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1

Yuan-Jen, Lee, ed. Magnetic memory: Fundamentals and technology. Cambridge University Press, 2010.

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2

Tang, Denny D. Magnetic memory: Fundamentals and technology. Cambridge University Press, 2010.

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3

Tang, Denny D. Magnetic memory: Fundamentals and technology. Cambridge University Press, 2010.

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4

Bolychevskiĭ, A. B. A Random interleaving of memory: Theory, simulation and a new algorithm. Institute of Automation and Electrometry, Siberian Branch USSR Ac. Sci., 1991.

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5

V, Drobotov I͡U. Ferritovye serdechniki zapominai͡ushchikh ustroĭstv. Ėnergoatomizdat, 1985.

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6

NATO Advanced Study Institute on Magnetic Storage Systems Beyond 2000 (2000 Rhodes, Greece). Magnetic storage systems beyond 2000. Kluwer Academic Publishers, 2001.

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7

1976-, Chen Yiran, ed. Nonvolatile memory design: Magnetic, resistive, and phase change. Taylor & Francis, 2012.

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8

C, Arnoldussen T., and Nunnelley L. L, eds. Noise in digital magnetic recording. World Scientific, 1992.

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9

W, DeHaven Patrick, ed. Magnetic and electronic films--: Microstructure, texture and application to data storage : symposia held April 1-4, 2002, San Francisco, California, U.S.A. Materials Research Society, 2002.

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10

1960-, Keeth Brent, ed. DRAM circuit design: Fundamental and high-speed topics. IEEE, 2007.

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11

IEEE, International Nonvolatile Memory Technology Conference (7th 1998 Albuquerque New Mexico). Seventh biennial IEEE Nonvolatile Memory Technology Conference: Proceedings : 1998 conference : June 22-24, 1998, Albuquerque, NM, USA. IEEE, 1998.

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12

Armed Forces Communications and Electronics Association (U.S.), Signal Corps Regimental Association (U.S.), and IEEE Components, Hybrids, and Manufacturing Technology Society., eds. Fifth biennial nonvolatile memory technology review: Proceedings, 1993 conference, June 23-24, 1993, Linthicum Heights, MD, USA. [Institute of Electrical and Electronics Engineers, 1993.

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13

IEEE International Nonvolatile Memory Technology Conference (6th 1996 Albuquerque, N.M.). Sixth Biennial IEEE International Nonvolatile Memory Technology Conference: Proceedings 1996 conference : June 24-26, 1996, Albuquerque, NM, USA. Institute of Electrical and Electronics Engineers, 1996.

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14

IEEE International Nonvolatile Memory Technology Conference (6th 1996 Albuquerque, N.M.). Sixth Biennial IEEE International Nonvolatile Memory Technology Conference: Proceedings 1996 conference, June 24-26, 1996, Albuquerque, NM, USA. Institute of Electrical and Electronics Engineers, 1996.

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15

1948-, Krahn Donald Robert, Sperry Corporation, and Langley Research Center, eds. Fesibility of self-structured current accessed bubble devices in spacecraft recording systems. Sperry Corporation, 1985.

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16

1948-, Krahn Donald Robert, Sperry Corporation, and Langley Research Center, eds. Fesibility of self-structured current accessed bubble devices in spacecraft recording systems. Sperry Corporation, 1985.

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17

Y, Sakurai, ed. Recent magnetics for electronics. OHMSHA and North-Holland, 1986.

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18

J, Borg Herman, ed. Applications of ferromagnetic and optical materials, storage and magnetoelectronics: Symposia held April 16-20, 2001, San Francisco, CA, U.S.A. Materials Research Society, 2001.

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19

Symposium, on Interface Tribology Towards 100 Gbit/inp2s and Beyond (2000 Seattle Wash ). Proceedings of the Symposium on Interface Tribology Towards 100 Gbit/inp2s and Beyond: Presented at ASME/STLE Jt. International Tribology Conference & Exhibition, October 1-4, 2000, Seattle, Washington. American Society of Mechanical Engineers, 2000.

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20

Materials Research Society. Meeting Symposium A. and Symposium on Materials Science and Technology for Nonvolatile memories (4th : 2008 : San Francisco, Calif.), eds. Materials science and technology for nonvolatile memories: Symposium held March 24-27, 2008, San Francisco, California, U.S.A. Materials Research Soc, 2008.

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21

M, Bussmann K., and Naval Research Laboratory (U.S.), eds. High density nonvolatile computer memory. Naval Research Laboratory, 1997.

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22

A, Chernenko V., ed. Advances in shape memory materials: Magnetic shape memory alloys: special topic volume, invited papers only. Trans Tech Publications, 2008.

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23

United States. National Aeronautics and Space Administration. Scientific and Technical Information Division., ed. Parallel optical random access memory (PORAM). National Aeronautics and Space Administration, Office of Management, Scientific and Technical Information Division, 1989.

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24

International Symposium on Explosion, Shock Wave and Hypervelocity Phenomena (2nd 2007 Kumamoto, Japan). Explosion, shock wave and hypervelocity phenomena in materials II: Selected peer reviewed papers from the 2nd International Symposium on Explosion, Shock Wave and Hypervelocity Phenomena (ESHP-2), 6-9 March 2007, Kumamoto, Japan. Trans Tech Publications, 2008.

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25

Tang, Denny D., and Yuan-Jen Lee. Magnetic Memory: Fundamentals and Technology. Cambridge University Press, 2010.

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26

Tang, Denny D., and Yuan-Jen Lee. Magnetic Memory: Fundamentals and Technology. Cambridge University Press, 2010.

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27

Tang, Denny D., and Yuan-Jen Lee. Magnetic Memory: Fundamentals and Technology. Cambridge University Press, 2010.

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28

Tang, Denny D., and Yuan-Jen Lee. Magnetic Memory: Fundamentals and Technology. Cambridge University Press, 2010.

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29

Wang, Shan X., Christopher B. Murray, Brian J. Daniels, Tom P. Nolan, and Michael A. Seigler. Magnetic Materials, Structures and Processing for Information Storage: Volume 614. University of Cambridge ESOL Examinations, 2014.

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30

Shirota, Riichiro. Nonvolatile Memory Semiconductor Technology. CRC, 2008.

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31

Shirota, Riichiro. Nonvolatile Memory Semiconductor Technology. Taylor & Francis Group, 2008.

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32

Xie, Yuan. Emerging Memory Technologies: Design, Architecture, and Applications. Springer, 2013.

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33

Xie, Yuan. Emerging Memory Technologies: Design, Architecture, and Applications. Springer, 2016.

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34

Xie, Yuan. Emerging Memory Technologies: Design, Architecture, and Applications. Springer London, Limited, 2013.

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35

Nanomagnetic and spintronic devices for energy-efficient memory and computing. John Wiley & Sons, 2016.

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36

Bandyopadhyay, Supriyo, and Jayasimha Atulasimha. Nanomagnetic and Spintronic Devices for Energy-Efficient Memory and Computing. Wiley & Sons, Incorporated, John, 2016.

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37

Bandyopadhyay, Supriyo, and Jayasimha Atulasimha. Nanomagnetic and Spintronic Devices for Energy-Efficient Memory and Computing. Wiley & Sons, Incorporated, John, 2016.

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38

Johnson, Mark. Magnetoelectronics. Academic Press, 2004.

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39

Johnson, Mark. Magnetoelectronics. Academic Press, 2004.

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40

Storage Area Networks For Dummies®. John Wiley & Sons, Ltd., 2009.

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41

List-Kratochvil, Emil. Hybrid Memory Devices and Printed Circuits 2017. SPIE, 2018.

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42

Extreme Statistics In Nanoscale Memory Design. Springer, 2010.

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43

Rutenbar, Rob A., and Amith Singhee. Extreme Statistics in Nanoscale Memory Design. Springer, 2012.

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44

Rutenbar, Rob A., and Amith Singhee. Extreme Statistics in Nanoscale Memory Design. Springer, 2010.

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45

Wouters, Dirk, Orlando Auciello, and Seungbum Hong. Emerging Non-Volatile Memories. Springer, 2016.

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46

Wouters, Dirk, Orlando Auciello, and Seungbum Hong. Emerging Non-Volatile Memories. Springer, 2014.

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47

Wouters, Dirk, Orlando Auciello, and Seungbum Hong. Emerging Non-Volatile Memories. Springer, 2014.

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48

Poelker, Christopher, and Alex Nikitin. Storage Area Networks for Dummies. For Dummies, 2003.

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49

Kaminska, Maria, Hideo Ohno, Tomasz Dietl, and David D. Awschalom. Spintronics. Elsevier Science & Technology Books, 2009.

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50

The IBM disk report. Applied Management Services, 1985.

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